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Updated: Jul 19, 2026

Defining the Program of Maternal mRNA Translation during In vitro Maturation using a Single Oocyte Reporter Assay
Published on: June 16, 2021
Melatonin has dose-dependent effects on folliculogenesis, oocyte maturation capacity and steroidogenesis
I Adriaens1, P Jacquet, R Cortvrindt
1Free University of Brussels, Follicle Biology Unit, Laarbeeklaan 101, 1090 Jette, Belgium. iadriaen@sckcen.be <iadriaen@sckcen.be>
Abstract:
Chemo and/or radiotherapy applied to young cancer patients most often have severe effects upon female fertility. Today, few options are available to protect ovarian function in females. However, these options are either ineffective, belong to the field of experimental research or/and are not applicable to all patients. Drugs that could protect the oocyte and its surrounding feeder cells from damage can be of great importance. Melatonin, being an important indirect antioxidant and a powerful direct free radical scavenger could be such a reagent. This paper reports the direct effects of different melatonin concentrations (range: 1 nM to 2 mM) on folliculogenesis and oogenesis of in vitro cultured mouse ovarian follicles. Early secondary mouse follicles were cultured in vitro for 12 days under different melatonin regimes. Every fourth day, survival rates were scored, follicles were morphologically evaluated and medium was collected for steroid analyses. On day 12, in vitro ovulation was induced by hCG/EGF. Eighteen hours later, oocytes were measured, oocyte maturation was evaluated and normality of spindle and chromosomes ascertained. Results obtained in this study indicated that 2mM melatonin is toxic. One mM negatively influenced oocyte maturation capacity. In the presence of 100 microM melatonin, androstenedione and progesterone were increased whereas estradiol was not influenced. Lower melatonin concentrations had no effect on the evaluated parameters. These data indicate an effect of melatonin on theca cell steroidogenesis. For prophylactic use, a dose of 10 microM could be suitable to reduce oxidative stress in cultured follicles.
Insights
Melatonin may protect female fertility during cancer treatment. Studies show 10 microM melatonin concentration is suitable for reducing oxidative stress in cultured ovarian follicles, preserving oocyte health.
Area of Science:
- Reproductive Biology
- Oncology
- Pharmacology
Background:
- Chemotherapy and radiotherapy severely impact female fertility in young cancer patients.
- Current ovarian function protection options are limited, experimental, or not universally applicable.
- Melatonin, an antioxidant and free radical scavenger, is investigated for potential protective effects.
Purpose of the Study:
- To investigate the direct effects of various melatonin concentrations on mouse ovarian follicle development and oocyte health in vitro.
- To determine the optimal melatonin concentration for protecting ovarian follicles from oxidative stress.
Main Methods:
- Mouse ovarian follicles were cultured in vitro for 12 days with different melatonin concentrations (1 nM to 2 mM).
- Follicle survival, morphology, steroidogenesis, and oocyte maturation were assessed.
- In vitro ovulation was induced, and oocyte spindle and chromosome normality were evaluated.
Main Results:
- 2 mM melatonin was toxic; 1 mM negatively affected oocyte maturation.
- 100 microM melatonin increased androstenedione and progesterone but not estradiol, indicating an effect on theca cell steroidogenesis.
- Lower melatonin concentrations showed no significant effects on evaluated parameters.
Conclusions:
- Melatonin influences ovarian follicle steroidogenesis in a dose-dependent manner.
- A concentration of 10 microM melatonin may be suitable for prophylactic use to mitigate oxidative stress in cultured follicles.
- Further research is warranted to explore melatonin's role in preserving fertility during cancer therapy.
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